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13.3 Biochemical analysis 249
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Table 13.1 List of bioactive compounds in the Trillium species.dcont’d
S. no. Source Chemical compound Class References
S7 isomer, Pennogenin-[O-b­glucopyranosyl or its isomer, Borassoside E isomer, Borassoside D, Borassoside D isomer
6 Trillium
tschonoskii
2,3-S-trans,10R,6E)­7,11-dimethyl-3­methylene-1, 6-dodecadien-10, 11-diol 10-O-b­glucopyranosyl-(1/4)
D-glucopyranosyl-
-O-b­(1/4)-Ob­glucopyranoside
7 Trillium erectum 25R)-17a-hydroxyspirost
-5-en-3b-yl O-a­rhamnopyranosyl
-(1/2)-b­glucopyranoside
8 T. erectum (25R)-17a-hydroxyspirost
-5-en-3b-yl O-a­rhamnopyranosyl
-(1/4)-b­glucopyranoside
9 T. erectum (25S)-17a,
27-dihydroxyspirost
-5-en-3b-yl O-a­Lrhamnopyranosyl­(1/2)-b
D-glucopyranoside
-
10 T. erectum (25S)-Spirost-5-ene-
3b,17a,27-triol
11 T. erectum (25S)-27-[(b-
Glucopyranosyl)oxy]
-17a-hydroxyspirost-5­en-3b-yl O-a­rhamnopyranosyl-(1/2)
D-glucopyranoside
-b-
12 T. tschonoskii 7-b-hydroxy trillenogenin
1-O-b-D apiofuranosyl
-(1 / 3)-a­rhamnopyranosyl­(1 / 2)-[b-D xylopyranosyl-(1 / 3)]­a-Larabinopyranoside
D-
Sesquiterpenoid glycoside
D-
D-
Steroidal
L-
D-
glycosides
Steroidal
L-
D-
glycosides
Steroidal glycosides
Steroidal glycosides
Chai et al. (2014)
Nohara et al. (1975)
Mahato et al. (1981)
Ono et al. (2007)
Yokosuka and Mimaki (2008)
D-
Steroidal glycosides
Yokosuka and Mimaki (2008)
L-
Steroidal glycosides
Wang et al. (2007)
Continued
250 CHAPTER 13 Trillium govanianum
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Table 13.1 List of bioactive compounds in the Trillium species.dcont’d
S. no. Source Chemical compound Class References
13 T. tschonoskii (23S,24S,25S)-spirost-5-
en-1b,3b,21,23, 24-pentaol-1-O-b-D xylopyranosyl-(1/!3)
-[O-a Lrhamnopyranosyl­(1/2)]-O-a­arabinopyranoside
L-
The other species of Trillium also have diverse bioactive compounds which have
different medicinal properties listed in Table 13.1.
13.4 Medical significance
T. govanianum plants have been used in the traditional as well as in the modern sys­tems of medicine due to the presence of bioactive compounds called phytochemi­cals. The species of Trillium found in the North part of America have properties like uterine stimulant, antimicrobial, antifungal, and antibacterial properties (Huang
and Zou, 2011; Ono et al., 2007). The rhizome of T. govanianum is used for the treat-
ment of various disorders like dysentery, backache, healing of wounds, inflamma­tion, skin boils, and menstrual and sexual disorder (Mahmood et al., 2012; Rani
et al., 2013; Sharma and Samant, 2014). There are several reports available on the
uses of powdered form of T. govanianum plants as anthelmintic, antifungal, and anti­microbial properties (Lone et al., 2013). Some of the other medicinal properties of T. govanianum are listed in Table 13.2.
White amorphous powder known as Govanoside A (C
E(C
45H72O16
T. govanianum are used as the antifungal agents (Ur Rahman et al., 2016). Govano- side A shows its antifungal effect against Candida albicans and Candida glabrata
) and steroidal saponins obtained from the dried rhizome of
Steroidal glycosides
56H88O29
Chai et al. (2014)
) and Borassoside
Table 13.2 Medicinal properties of Trillium govanianum.
S. no. Diseases References
1 Skin infection Lone et al. (2013) 2 Antianalgesic Ur Rahman et al. (2016) 3 Antiinflammatory Ur Rahman et al. (2016) 4 Treating sexual disorder Rani et al. (2013) 5 Antidiarrheal and antiseptic Mahmood et al. (2012),
Sharma and Samant (2014)
6 Antifertility Huang and Zou (2011)
13.5 Molecular breeding and genetic mapping 251
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(Ur Rahman et al., 2016). Borassoside E contains three sugar units’ residues and shows better antifungal activity as compared with Govanoside A which has five sugar units’ residues. The antifungal activities of these two compounds are due to their polar nature which may help in the membrane permeability in the fungal membrane (Ur Rahman et al., 2016).
Khan et al. (2018) reported first time the cytotoxicity effect of methanolic extract
of root of T. govanianum and its solid-phase extraction fraction against four human carcinoma cell lines: breast, liver, lung, and urinary bladder using MTT assay (Hayes
et al., 2009). The methanolic extract showed differential response in different cell
line and the highest level of cytotoxicity was repor ted in urinary bladder cell line (EJ138) but considerably active against breast (MCF-7), liver (HepG2), and lung (A549) cell line (Yokosuka and Mimaki, 2008). The cytotoxicity effect of T. govanianum is due to the presence of phytochemicals saponins and sapogenins (Nooter and Herweijer, 1991).
Ur-Rahman et al. (2015a,b) investigated the n-hexane fraction of T. govanianum
using GC/MS analysis and revealed the presence of steroids, glycosides, saponins, saturated, and unsaturated fatty acids that act as biologically active compounds with antifungal, antibacterial, and anticancer activities (Ching, 2008; Qiong et al., 2011).
Sagar et al. (2017) in their study reported the presence of various endophytes and
antibacterial activity of T. govanianum plants. They isolated the endophytes according to their occurrence in various seasons and different p arts of the plants such as stem, leaves, and rhizomes. The isolated endophytes were screened as Alter-
naria sp., Aspergillus nidulans, Aspergillus niger, Aspergillus wentii, Fusarium solani, Mucor plumbeus, Phoma sp., Pythium sp., Rhizopus nigricans, Rhizopus oryzaoe, Stachybotrys atra, and Trichoderma viride. Antibacterial activity was
performed using the different solvent extracts such as ethanol, acetone, and distilled water using well diffusion method. The screening showed the highest activity of methanolic extract against Staphylococcus aureus, Escherichia coli, and Yersinia pestis (the human pathogenic bacteria).
13.5 Molecular breeding and genetic mapping
The cultivation of medicinal plants is important as there is increased market of phy­tomedicines. Despite increasing worldwide demand of secondary metabolites like phenylproponoids, alkaloids, flavonoids, polyketides, isoprenoids, etc. There are not much efforts have been made to develop more content of naturally occurring therapeu­tic compounds. Due to polygenic inheritance of these traits, it is very difficult to analyze the clear-cut effect of minor genes and segregation pattern in tradition breeding. We can employ advanced OMICs tools like genomic, transcriptomics, proteomics, and metabolomics to improve the content of secondary metabolites that have medicinal value. By integration of these tools, we can understand about genetics of medicinally important secondary metabolites. Through population or reverse genetics, development of molecular marker facilitates the detection of those
252 CHAPTER 13 Trillium govanianum
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quantitative trait loci (QTL) that control these traits. Method and approaches for marker development, QTLs identification and marker-trait association well described in other crops (Bhandawat et al., 2015; Bhardwaj et al., 2014; Jayaswall et al., 2019;
Rahim et al., 2018; Rahim, et al., 2020; Sharma et al., 2011, 2020b, 2020a, 2020d; Sharma, et al., 2020; Sharma et al., 2020c; Singh et al., 2015; Singh and Sharma,
2020). We can find out the desirable genotypes of medicinally important plants in
view of augmented contents of herbal medicinal. There are few studies reported on genetic linkage maps of medicinal plants, such as stevia (Ya o e t al. , 19 9 9), poppy (Straka and Nothnagel, 2002), and periwinkle (Gupta et al., 2007). We can perform molecular mapping of T. govanianum to evaluate and detection of QTL governing the therapeutic traits, and through advanced breeding skill such as genomic selection (Rahim et al., 2020b), we can improve herbal medicinal value and improved variety of T. govanianum. QTL’s detection and use of flanking marker have been successfully achieved in some forest crop plants (Kole, 2011; Kole and Abbott, 2008).
In T. govanianum, such efforts are lacking due to the limited genetic informa- tion and large genome sizes. However, recent reports involve solitary transcr iptomic analysis and two studies related to development of SSR marke rs and diversity characterizations. The spatial transcriptomic study involving the sequencing of four different tissues has characterized the steroidal saponin biosyn­thesis pathway genes and their expression pattern including other key genes like CYPs and UGTs and transcription factors. This study has revealed that all the tissues are actively involved in steroidal biosynthesis with accumulation in rhizome (Singh et al., 2017). Firstly, Sharma et al. (2017) have developed 21 SSRs markers and characterize d them in 20 T. govanianum accessions. Secondly,
Dhyani et al. (2020) created functionally relevant genome-wide marker resource of
5337 SSR markers in T. govanianum and identified 105 polymorp hic markers. They also reported that low genetic diversity also existed in the populations of
T. govanianum, so there will be an urgent need of strict conservation plans for T. govanianum in the Indian Himalayas.
13.5.1 Future goals for Trillium govanianum
1. Conser vation and evaluation of T. govanianum germplasms.
2. Development of in vitro and ex situ propagation protocols.
3. Assessment of genetic diversity, agronomic performance, and contents of the
herbal medicines.
4. Construct of genome-wide linkage maps using SNPs marker.
5. To identify QTLs controlling the contents of the herbal medicines.
6. Marker-assisted selection or genomic selection approaches can be employ for the
selection of high-quality genotypes or to develop improved species.
13.6 Molecular database studies
The recent rise in the illicit trafficking and overexploitation of this species raises concern and leads to find a solution for this with the help of ever-expanding data
13.8 Conclusions and future perspectives 253
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in public domain. In T. govanianum, only 5358 microsatellite markers, 66 nucleo- tides, 214 protein sequences, and 4 transcriptome (https://www.ncbi.nlm.nih.gov/
search/all/?term¼trillium%20govanianum) analyses provide various insights into
conserving this endemic plant. These studies lead to the assessment of various syn­thesis pathways. Knowledge of key genes in steroidal saponins synthesis can be explored for commercial use.
13.7 Threat
Continuous overexploitation of rhizome of plants, specific habitat, and unique climate requirements poses threat of extinction to this species. T. govanianum vulnerability is mainly due to illegal trade, habitat destruction, predation, and change in climat ic condition (Chauhan et al., 2019). Increase in collection for commercial purposes in nonsustainable way and further rise in price leads to illegal undocumented trade which puts pressure on this species. Next the need of specific habitats puts its revival at risk with habitat destruction and climate change. Studies also documented the threat from herbivores to both wild and domesticated animal s. The reports of various levels of inbreeding depressions due to self-pollination and limited pollination lead to production of less viable seeds. Vegetative propagation is lacking or very little which further adds vulnerability.
13.8 Conclusions and future perspectives
T. govanianum has many important active ingredi ents and medicinal properties, due to which it is used in the treatment of numerous critical diseases. Due to ill egal overexploitation, the species is at the verge of extinction in the Indian Himalayas. The atypical life cycle, narrow range of distribution, constrained habitation, over­exploitation, and incr eased value in the market are the major threats to the survival of the species. In the past, there were very few reports in literature that showed limited research has been done in ex situ propagation, genomics, biochemical, transcriptomics, and metabolomics of the T. govanianum. So, there will be an urgent need of actions and policie s for co nservation of the species like in vitro and ex situ propagation protocols, creation of genomic resource, surveillance of harvesting, and trade practices for security of the sustainable usage of the species for future generations.
Acknowledgments
National Agri-Food Biotechnology Institute (NABI), Mohali Punjab, Department of Biotech­nology, Govt. of India, is acknowledged for support. DeLCON (DBT-Electronic Library Con­sortium), Gurugram, India, is acknowledged for access to the e-resources.
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Valeriana jatamansi
https://t.me/med1917
CHAPTER
14
Pushpender Bhardwaj1, Shiv Rattan2, Avilekh Naryal1, Ashwani Bhardwaj1,
1
Defence Institute of High Altitude Research, Defence R & D Organization, Leh, Ladakh, India;
2
Biotechnology Division, CSIR-Institute of Himalayan Bioresource Technology, Palampur,
Ashish R. Warghat
Himachal Pradesh, India
14.1 Introduction
There are around 250 species associated with the genus Valeriana representing the Valerianaceae family. As far as the global distribution is concerned, it inhabits temperate regions of the world. In India, around 16 species are present, among which 2 subspecies and 5 species of this genus are found in the high-altitude region of cen­tral Himalayas. Herbaceous Valeriana jatamansi is also known as Indian Valerian, Sugandhbala, and Tagar in Hindi and Sanskrit, respectively (Patan et al., 2018). In Himalayan territories, it is found at an altitude of 3000 m, whereas in Khasi and Jain­tia Hills, it dwells between 1500 and 1800 m. However, geographically isolated temperate regions and altitudinal variation stipulat e its genetic and morphological features directly affecting the accumulation of active ingredients, volatile, and nonvolatile components. It is being used in Indian medicine systems since ages particularly as a substitute of European Valeriana officinalis (Prakash, 1999). Studies regarding the genetic diversity of this species help to understand the avail­able genetic abundance. The biochemical analysis of this plant has an economical value and leads to the selection of superior variety for the active ingredient produc­tion (Singh et al., 2015).
2
14.2 Origin and distribution
The Valeriana word was primarily used in the 19th and 20th centuries (Evans, 2008). Due to its medicinal properties, this plant is highly valued in the Indian Ayurveda system, the Unani system in ancient Greek and Arab, and in old Egypt and Rome. It is reported to be used in numerous Ayurvedic and modern medicines (Bhatt
et al., 2012; Jugran et al., 2012). This plant grows wildly in all temperate and sub-
tropical regions of the world except Australia (Jain, 1968; Polunin and Stainton,
1987). About 250 species of the genus Valeriana have been reported from Chile,
Himalayan Medicinal Plants. https://doi.org/10.1016/B978-0-12-823151-7.00013-1
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